A detection device for an adiabatic module

By designing an insulating module detection device for automatic cutting and positioning sampling, the problem of inaccurate manual cutting is solved, and efficient and accurate insulating module detection is achieved.

CN119928019BActive Publication Date: 2025-06-13SINOTECH ENERGY CO LTD
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Patent Information

Application Number
CN202510416645.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-06-13
Estimated Expiration
2045-04-03

AI Technical Summary

Technical Problem

The existing thermal insulation module detection device requires manual cutting of samples, which leads to inaccurate cutting and affects the accuracy of the test data.

Method used

A detection device including a material cutting mechanism, a material fixing mechanism and a heat insulation mechanism is designed. Automatic cutting and positioning sampling is realized through electric heating plate heating and frame cutting knife cutting, and the temperature conduction efficiency is improved through the heat insulation mechanism.

Benefits of technology

Automatic cutting and positioning sampling of the insulation module is realized, which improves the convenience and accuracy of detection and ensures the reliability of the test data.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a detection device for an adiabatic module, which relates to the field of adiabatic module detection and solves the problem that it is difficult for existing temperature detection devices to cut an adiabatic module. The device includes a device housing and a top frame. A control power supply is arranged below the top frame, and an electric heating plate is installed at the bottom of the control power supply. A heat conduction plate is arranged at the top of the device housing, and a temperature measurement box is arranged below the heat conduction plate. A temperature sensor is installed at the bottom of the temperature measurement box. An operation panel is installed on the outer side of the device housing, and the operation panel is docked with the temperature sensor through a cable. It further includes a cutting mechanism for cutting and taking materials of the adiabatic module, and the cutting mechanism is installed outside the electric heating plate. Through the cutting mechanism, the present invention can cut the adiabatic module during the movement of the electric heating plate, so that the size of the adiabatic module corresponds to the size of the heat conduction plate, thereby improving the convenience of detecting the adiabatic module.
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Description

Technical Field

[0001] The present invention relates to the field of adiabatic module detection, and specifically to a detection device for an adiabatic module. Background Art

[0002] An adiabatic module is a component or material used to prevent heat transfer, usually made of materials with low thermal conductivity. Its core function is to achieve temperature isolation by reducing heat conduction, convection or radiation, and is commonly found in fields such as construction, electronic devices, industrial equipment and automobiles.

[0003] The materials of adiabatic modules are often polyurethane foam, polystyrene foam, rock wool, ceramic fiber and glass fiber, etc., which have characteristics such as light weight, heat insulation and sound insulation. During production, in order to ensure that the adiabatic module can effectively reduce heat transfer in actual applications, it is necessary to conduct temperature tests on the adiabatic module to evaluate the thermal conductivity and thermal resistance value of the adiabatic module. During detection, the module needs to be placed in the detection equipment for temperature detection. However, adiabatic modules are mostly mass-produced, and spot checks need to be carried out on the modules. Since the test space of the test device is fixed, it is necessary to cut the adiabatic module samples to be tested, and put the adiabatic module samples that meet the size into the test space of the test device for detection and processing. Manual cutting is relatively troublesome, and it is also impossible to guarantee the cutting accuracy, which will affect the accuracy of the test data. Summary of the Invention

[0004] The purpose of the present invention is to provide a detection device for an adiabatic module to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions:

[0006] A detection device for an adiabatic module, comprising: a device housing and a top frame fixedly installed on the top of the device housing. A control power supply is arranged below the top frame. An electric heating plate is installed at the bottom of the control power supply. A heat conduction plate is arranged on the top of the device housing. A temperature measurement box is arranged below the heat conduction plate. A temperature sensor is fixedly installed at the bottom of the temperature measurement box. An operation panel is fixedly installed on the outside of the device housing. The operation panel is connected to the temperature sensor through a cable; it further includes: a cutting mechanism for cutting and taking materials of the adiabatic module, the cutting mechanism is installed outside the electric heating plate; a material positioning mechanism for taking out the detected adiabatic module, the material positioning mechanism is installed outside the electric heating plate; a heat insulation mechanism for improving the heating efficiency of the electric heating plate on the adiabatic module, the heat insulation mechanism is installed outside the temperature measurement box.

[0007] Preferably, the cutting mechanism includes a mounting frame fixedly installed on the top of the electric heating plate. First moving blocks are fixedly installed at both ends of the mounting frame. An installation ring is arranged inside the first moving block. Two adjusting rods are rotatably installed between the bottom of the top frame and the inner side of the device housing. The two adjusting rods are respectively located on both sides of the temperature measuring box. A first thread matching the installation ring is provided on the outer side of the adjusting rod. An installation plate is fixedly installed on the outer side of the electric heating plate. A frame-shaped cutting knife is fixedly installed at the bottom of the installation plate. The inner side of the frame-shaped cutting knife is in contact with the outer side of the heat conducting plate. An opening for the movement of the frame-shaped cutting knife is provided on the top of the device housing. A plurality of positioning rods distributed in a rectangular array are fixedly installed between the bottom of the heat conducting plate and the inner side of the device housing, and the positioning rods slidably penetrate through the bottom of the temperature measuring box. A driving motor is fixedly installed on the bottom inner wall of the device housing. The output end of the driving motor is fixedly connected to the adjacent adjusting rod, and a synchronous belt is rotatably installed between the two adjusting rods.

[0008] Preferably, the material positioning mechanism includes a plurality of mounting cylinders fixedly installed on the top of the mounting plate in central symmetry. A plug rod is fixedly installed inside the mounting cylinder. A plurality of pressing plates distributed in central symmetry are slidably installed on the outer side of the plug rod. The pressing plates are in a T-shaped structure. Two first connecting rods distributed in parallel are hingedly assembled between the pressing plates and the inner side of the plug rod. A plug pin is slidably installed inside the plug rod. A moving plate is fixedly installed on the outer side of the plug pin. A second connecting rod is hingedly assembled between the moving plate and the pressing plate. A slider is fixedly installed on the outer side of the plug pin. A cavity for the limited sliding of the slider is provided on the inner side of the plug rod. A tension spring is fixedly installed between the bottom of the slider and the inner side of the cavity. A plurality of symmetrically distributed sliding frames are slidably installed on the inner side of the plug rod. A first spring is fixedly installed between the sliding frames and the inner side of the plug rod. A locking tooth is fixedly installed on one side of the sliding frame close to the slider. The top of the slider is in an arc-shaped inclined surface structure, and the bottom of the locking tooth is in an inclined surface structure. An unlocking component for moving the locking tooth is further provided at the top of the plug rod.

[0009] Preferably, the heat insulation mechanism includes two second moving blocks symmetrically and fixedly installed at the bottom of the temperature measuring box. A second thread cooperating with the second moving blocks is provided on the outer side of the adjusting rod, and the pitch of the second thread is smaller than that of the first thread. Two symmetrically distributed limiting blocks are fixedly installed at the bottom of the top frame, and the two limiting blocks are respectively located below the two first moving blocks. A plurality of symmetrically distributed sliding cavities are provided on the outer side of the mounting ring. An inserting block is slidably installed inside the sliding cavity. A third spring is fixedly installed between the inserting block and the inner side of the sliding cavity. One side of the inserting block away from the third spring is of an inclined surface structure, and a slot for the inserting block to be limited and inserted is provided inside the first moving block.

[0010] Preferably, a plurality of ventilation holes are provided at the top of the mounting plate.

[0011] Preferably, a sealing cylinder is slidably installed on the outer side of the positioning rod, and the sealing cylinder is fixedly installed at the bottom of the temperature measuring box.

[0012] Preferably, a plurality of equidistantly distributed anti-slip grooves are provided on one side of the pressing plate away from the first connecting rod.

[0013] Preferably, the unlocking assembly includes a pressing plate arranged at the top of the inserting rod. A plurality of symmetrically distributed push rods are fixedly installed at the bottom of the pressing plate. The number of the push rods is the same as that of the sliding frames, and the push rods are slidably installed inside the sliding frames. A resisting block is fixedly installed inside the sliding frames. The top of the resisting block and the bottom of the push rod are both of inclined surface structures. A second spring is fixedly installed between the bottom of the pressing plate and the inserting rod.

[0014] Preferably, a top block is fixedly installed at the bottom of the top frame. The number of the top blocks is the same as that of the pressing plates, and the top blocks are located directly above the pressing plates.

[0015] Preferably, the inner side of the temperature measuring box is in contact with the outer side of the frame-shaped cutting knife, and the top of the temperature measuring box is of an inclined surface structure.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0017] Through the material cutting mechanism, the present invention can drive the electric heating plate to move downward, so that the electric heating plate is in contact with the insulation module on the heat conducting plate. The temperature generated by the heat insulation module can be conducted to the temperature measuring box through the heat conducting plate. By monitoring the temperature in the temperature measuring box in real time through the temperature sensor, the heat insulation performance of the heat insulation module can be obtained, and during the movement of the electric heating plate, the heat insulation module is cut to make the size of the heat insulation module correspond to the size of the heat conducting plate, thereby improving the convenience of detecting the heat insulation module.

[0018] Through the material positioning mechanism of the present invention, when the electric heating plate abuts against the heat insulation module, the insertion rod can be inserted into the inner side of the heat insulation module, so that the extrusion plate abuts against the inner side of the heat insulation module, realizing the fixation of the heat insulation module, facilitating the frame-shaped cutter to cut, and when the electric heating plate resets upward, the extrusion plate pulls the heat insulation module to move upward, facilitating material taking, thereby achieving the effects of positioning cutting and rapid material taking.

[0019] Through the heat insulation mechanism of the present invention, after the frame-shaped cutter cuts the heat insulation module, the temperature measuring box can move upward to the outside of the frame-shaped cutter, providing a heat insulation effect for the frame-shaped cutter, facilitating the temperature to be conducted to the heat conducting plate, thereby improving the accuracy of heat insulation detection. Brief Description of the Drawings

[0020] Figure 1 is a schematic diagram of the overall structure of the present invention;

[0021] Figure 2 is a schematic diagram of the top frame and the control power supply structure of the present invention;

[0022] Figure 3 is a schematic diagram of the temperature measuring box and the frame-shaped cutter structure of the present invention;

[0023] Figure 4 is a schematic diagram of the heat conducting plate and the mounting plate structure of the present invention;

[0024] Figure 5 is a schematic diagram of the insertion block and the mounting ring structure of the present invention;

[0025] Figure 6 is a schematic diagram of the insertion rod and the insertion pin structure of the present invention;

[0026] Figure 7 is a schematic diagram of the slider and the sliding frame structure of the present invention;

[0027] Figure 8 is a schematic diagram of the moving plate and the extrusion plate structure of the present invention.

[0028] In the figure: 1, device housing; 2, top frame; 3, control power supply; 4, electric heating plate; 5, heat conducting plate; 6, temperature measuring box; 7, temperature sensor; 8, operation panel; 9, mounting rack; 10, first moving block; 11, mounting ring; 12, adjusting rod; 13, mounting plate; 14, frame-shaped cutter; 15, driving motor; 16, synchronous belt; 17, mounting cylinder; 18, insertion rod; 19, extrusion plate; 20, first connecting rod; 21, insertion pin; 22, moving plate; 23, second connecting rod; 24, slider; 25, tension spring; 26, sliding frame; 27, first spring; 28, tooth; 29, abutting block; 30, pressing disc; 31, push rod; 32, second spring; 33, positioning rod; 34, second moving block; 35, limiting block; 36, sealing cylinder; 37, insertion block; 38, third spring; 39, top block. Detailed implementation manners

[0029] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0030] Embodiment 1: Please refer to Figures 1-8 , a detection device for an adiabatic module in the figure, including a device housing 1 and a top frame 2 fixedly installed on the top of the device housing 1. A control power supply 3 is arranged below the top frame 2, an electric heating plate 4 is installed at the bottom of the control power supply 3, a heat conduction plate 5 is arranged on the top of the device housing 1, a temperature measurement box 6 is arranged below the heat conduction plate 5, a temperature sensor 7 is fixedly installed at the bottom of the temperature measurement box 6. The temperature generated by heating the adiabatic module by the electric heating plate 4 can be conducted to the temperature measurement box 6 through the heat conduction plate 5. By monitoring the temperature in the temperature measurement box 6 in real time through the temperature sensor 7, the heat insulation performance of the adiabatic module can be obtained, and the adiabatic module with the best adiabatic effect can be selected through the detection values of multiple adiabatic modules, which is applicable to the batch detection of various adiabatic modules. An operation panel 8 is fixedly installed on the outer side of the device housing 1. The operation panel 8 is connected to the temperature sensor 7 through a cable, and the temperature sensor 7 can be operated through the operation panel 8; further including: a cutting mechanism for cutting and taking materials of the adiabatic module, the cutting mechanism is installed on the outer side of the electric heating plate 4; a material positioning mechanism for taking out the detected adiabatic module, the material positioning mechanism is installed on the outer side of the electric heating plate 4; a heat insulation mechanism for improving the heating efficiency of the electric heating plate 4 on the adiabatic module, the heat insulation mechanism is installed on the outer side of the temperature measurement box 6.

[0031] The blanking mechanism includes a mounting frame 9 fixedly installed on the top of the electric heating plate 4. At both ends of the mounting frame 9, first moving blocks 10 are fixedly installed. Inside the first moving blocks 10, mounting rings 11 are arranged. Between the bottom of the top frame 2 and the inner side of the device housing 1, two adjusting rods 12 are rotatably installed. The two adjusting rods 12 are respectively located on both sides of the temperature measuring box 6. On the outer side of the adjusting rod 12, a first thread matching with the mounting ring 11 is provided. When the adjusting rod 12 rotates, it can drive the mounting frame 9 to move downward through the mounting ring 11 and the first moving block 10. The mounting frame 9 can drive the electric heating plate 4 to contact the heat insulation module on the heat conducting plate 5. On the outer side of the electric heating plate 4, a mounting plate 13 is fixedly installed. On the top of the mounting plate 13, a plurality of ventilation holes are provided, which is convenient for exhausting air and improves the safety of heat insulation detection. On the bottom of the mounting plate 13, a frame-shaped cutter 14 is fixedly installed. The mounting plate 13 can drive the frame-shaped cutter 14 to move synchronously, so that the frame-shaped cutter 14 cuts the heat insulation module. The inner side of the frame-shaped cutter 14 is in contact with the outer side of the heat conducting plate 5. On the top of the device housing 1, an opening for the frame-shaped cutter 14 to move is provided, so that during the downward movement of the frame-shaped cutter 14, it can be in contact with the outer side of the heat conducting plate 5, and the frame-shaped cutter 14 and the heat conducting plate 5 wrap the cut heat insulation module. Between the bottom of the heat conducting plate 5 and the inner side of the device housing 1, a plurality of positioning rods 33 distributed in a rectangular array are fixedly installed, so that the positioning rods 33 provide support for the heat conducting plate 5, and the positioning rods 33 slide through the bottom of the temperature measuring box 6. On the outer side of the positioning rods 33, a sealing cylinder 36 is slidably installed. The sealing cylinder 36 is fixedly installed at the bottom of the temperature measuring box 6. On the bottom inner wall of the device housing 1, a driving motor 15 is fixedly installed. The output end of the driving motor 15 is fixedly connected to the adjacent adjusting rod 12, and a synchronous belt 16 is rotatably installed between the two adjusting rods 12, so that the driving motor 15 can drive the corresponding adjusting rod 12 to rotate, and this adjusting rod 12 drives the other adjusting rod 12 to rotate synchronously through the synchronous belt 16.

[0032] Embodiment 2: Please refer to Figures 3-8, this embodiment further elaborates on the first embodiment. The fixed material mechanism in the figure includes a plurality of mounting cylinders 17 fixedly installed at the top of the mounting plate 13 in central symmetry. A plug rod 18 is fixedly installed inside the mounting cylinder 17. When the mounting plate 13 moves downward, the plug rod 18 can be inserted into the inside of the heat insulation module. A plurality of pressing plates 19 distributed in central symmetry are slidably installed on the outer side of the plug rod 18. The pressing plate 19 has a T-shaped structure. Two first connecting rods 20 distributed in parallel are hingedly assembled between the pressing plate 19 and the inside of the plug rod 18. A plug pin 21 is slidably installed inside the plug rod 18. The mounting plate 13, the plug rod 18, and the plug pin 21 are all made of heat insulation materials. During the movement of the plug rod 18, it can drive the plug pin 21 to contact the top of the heat conduction plate 5, causing the plug pin 21 to move upward along the inside of the plug rod 18. A moving plate 22 is fixedly installed on the outer side of the plug pin 21. A second connecting rod 23 is hingedly assembled between the moving plate 22 and the pressing plate 19. During the movement of the plug pin 21, it can pull the second connecting rod 23 through the moving plate 22, causing the second connecting rod 23 to push the pressing plate 19 to contact the inside of the insulation module. A plurality of anti-slip grooves are equally spaced on the side of the pressing plate 19 away from the first connecting rod 20. A slider 24 is fixedly installed on the outer side of the plug pin 21. A cavity for the slider 24 to slide and be limited is provided inside the plug rod 18. A tension spring 25 is fixedly installed between the bottom of the slider 24 and the inside of the cavity. When the slider 24 moves, it can stretch the tension spring 25, and the resilience of the tension spring 25 can be utilized to facilitate the reset of the plug rod 18. A plurality of symmetrically distributed sliding frames 26 are slidably installed inside the plug rod 18. A first spring 27 is fixedly installed between the sliding frame 26 and the inside of the plug rod 18. A tooth 28 is fixedly installed on the side of the sliding frame 26 close to the slider 24. The top of the slider 24 has an arc-shaped inclined surface structure, and the bottom of the tooth 28 has an inclined surface structure. When the slider 24 moves upward, the inclined surface of the slider 24 can contact the inclined surface of the tooth 28, pushing the tooth 28 to move. When the slider 24 moves above the tooth 28, the sliding frame 26 is pushed by the resilience of the first spring 27 to move the tooth 28 to the bottom of the slider 24, realizing the locking of the slider 24. An unlocking component for moving the tooth 28 is also provided at the top of the plug rod 18. The unlocking component includes a pressure plate 30 provided at the top of the plug rod 18. A plurality of push rods 31 distributed in central symmetry are fixedly installed at the bottom of the pressure plate 30. The number of push rods 31 is the same as the number of sliding frames 26, and the push rods 31 are slidably installed inside the sliding frames 26. A stop block 29 is fixedly installed inside the sliding frame 26. The top of the stop block 29 and the bottom of the push rod 31 both have inclined surface structures. When the push rod 31 moves downward, it can push the stop block 29 to move, causing the stop block 29 to drive the sliding frame 26 to move, and the sliding frame 26 can pull the tooth 28 away from the slider 24, realizing the unlocking of the slider 24. A second spring 32 is fixedly installed between the bottom of the pressure plate 30 and the plug rod 18. A top block 39 is fixedly installed at the bottom of the top frame 2. The number of top blocks 39 is the same as the number of pressure plates 30.Moreover, the top block 39 is located directly above the pressure plate 30. When the mounting plate 13 resets upward, the top block 39 can contact the pressure plate 30, enabling the top block 39 to push the pressure plate 30 to move, realizing the movement of the push rod 31, and thus automatically unlocking the slider 24.

[0033] Embodiment 3: Please refer to Figures 2-5 , this embodiment further explains other embodiments. The heat insulation mechanism in the figure includes two second moving blocks 34 symmetrically and fixedly installed at the bottom of the temperature measuring box 6. A second thread cooperating with the second moving block 34 is provided on the outer side of the adjusting rod 12. When the adjusting rod 12 rotates, it can drive the second moving block 34 to move upward through the second thread. Moreover, the pitch of the second thread is smaller than that of the first thread, and the spiral direction of the second thread is opposite to that of the first thread, so that the moving speed of the temperature measuring box 6 is less than that of the frame cutter 14. The inner side of the temperature measuring box 6 contacts the outer side of the frame cutter 14, enabling the temperature measuring box 6 to sleeve on the outer side of the frame cutter 14 when moving. And the top of the temperature measuring box 6 is of an inclined surface structure, facilitating the temperature measuring box 6 to push open the insulation module outside the frame cutter 14. Two limiting blocks 35 symmetrically distributed are fixedly installed at the bottom of the top frame 2, and the two limiting blocks 35 are respectively located below the two first moving blocks 10, so that when the first moving blocks 10 move downward, they can contact the limiting blocks 35. A plurality of sliding cavities symmetrically distributed around the center are provided on the outer side of the mounting ring 11. An insertion block 37 is slidably installed inside the sliding cavity. A third spring 38 is fixedly installed between the insertion block 37 and the inner side of the sliding cavity. One side of the insertion block 37 away from the third spring 38 is of an inclined surface structure. A slot for limiting and inserting the insertion block 37 is provided inside the first moving block 10. When the first moving block 10 contacts the limiting block 35, the resistance of the limiting block 35 to the first moving block 10 can be utilized to make the slot of the first moving block 10 push the insertion block 37 to move. The insertion block 37 compresses the third spring 38 and retracts into the sliding cavity of the mounting ring 11, keeping the first moving block 10 relatively stationary.

[0034] Working principle: First, the staff places the adiabatic module to be detected on the top of the device housing 1, so that the adiabatic module is located between the heat conduction plate 5 and the frame cutter 14. Then, the staff starts the driving motor 15, and the driving motor 15 drives the corresponding adjusting rod 12 to rotate, so that the adjusting rod 12 drives another adjusting rod 12 to rotate synchronously through the synchronous belt 16. The two adjusting rods 12 drive the corresponding mounting rings 11 to rotate synchronously through the first thread on their outer sides. The elasticity of the third spring 38 provides a thrust for the insert block 37, so that the insert block 37 abuts against the slot of the first moving block 10. The insert block 37 can drive the first moving block 10 to rotate. The two first moving blocks 10 can drive the mounting bracket 9 to move downward, so that the mounting bracket 9 drives the control power supply 3 to move downward. The control power supply 3 drives the frame cutter 14 on the mounting plate 13 to contact the top of the insulation module, so that the frame cutter 14 cuts the insulation module into a square shape. At the same time, the electric heating plate 4 at the bottom of the control power supply 3 contacts the top of the insulation module. Meanwhile, the mounting plate 13 drives the insertion rod 18 to insert into the interior of the insulation module, so that the insertion rod 18 drives the insertion pin 21 to contact the heat conduction plate 5. Using the reaction force of the heat conduction plate 5 on the insertion pin 21, the insertion pin 21 moves along the inner side of the insertion rod 18. The insertion pin 21 drives the moving plate 22 and the slider 24 to move synchronously, so that the moving plate 22 pushes the extrusion plate 19 to move through the second connecting rod 23, so that the extrusion plate 19 contacts the inner side of the insulation module. Meanwhile, the slider 24 pushes the inclined surface of the locking tooth 28 through the inclined surface at its top, so that the slider 24 pushes the locking tooth 28 to move and stretches the tension spring 25. The locking tooth 28 drives the sliding frame 26 to move synchronously, so that the sliding frame 26 compresses the first spring 27. When the slider 24 moves above the locking tooth 28, using the resilience of the first spring 27, the sliding frame 26 drives the locking tooth 28 to reset. The top of the locking tooth 28 can contact the bottom of the slider 24 to lock the slider 24. The extrusion plate 19 can then extrude and fix the insulation module. At the same time, the two adjusting rods 12 drive the two second moving blocks 34 to move synchronously through the second thread on their outer sides, so that the two second moving blocks 34 drive the temperature measuring box 6 to move upward. When the first moving block 10 contacts the limit block 35, using the resistance of the limit block 35 to the first moving block 10, the slot of the first moving block 10 pushes the insert block 37 to move. The insert block 37 compresses the third spring 38 and retracts into the sliding cavity of the mounting ring 11. At this time, the top of the temperature measuring box 6 is inserted between the insulation module and the frame cutter 14, so that the temperature measuring box 6 wraps around the outside of the frame cutter 14 to achieve heat insulation protection for the frame cutter 14. Then, the staff starts the control power supply 3, so that the electric heating plate 4 heats the top of the insulation module, so that the mounting plate 13 and the temperature measuring box 6 maintain a constant temperature state. The temperature of the insulation module can be conducted to the heat conduction plate 5, and the temperature sensor 7 can detect the temperature in the temperature measuring box 6 and transmit the temperature data to the operation panel 8. The staff can then obtain the thermal conductivity of the insulation module according to the values displayed on the operation panel 8. Finally, the staff starts the driving motor 15 again,The mounting bracket 9 drives the frame cutter 14 on the mounting plate 13 away from the device housing 1. Under the positioning of the pressing plate 19, the insertion rod 18 can drive the detected thermal insulation module to move upward through the pressing plate 19. When the pressing disc 30 contacts the top block 39 on the top frame 2, the top block 39 can push the pressing disc 30 to move downward, causing the pressing disc 30 to drive the push rod 31 to move synchronously. The inclined surface at the bottom of the push rod 31 moves along the inclined surface of the abutting block 29, so that the push rod 31 pushes the sliding frame 26 to move through the abutting block 29. The sliding frame 26 can drive the engaging teeth 28 away from the slider 24. Using the resilience of the tension spring 25, the slider 24 is reset downward. The slider 24 can drive the insertion pin 21 to reset, so that the insertion pin 21 retracts the pressing plate 19 into the installation cavity of the insertion rod 18 through the moving plate 22 and the second connecting rod 23, and then the detected thermal insulation module can be released. The staff can remove the detected thermal insulation module. At the same time, the temperature measuring box 6 can be retracted downward into the device housing 1, so that the temperature measuring box 6 is away from the cut thermal insulation module, which is convenient for the staff to take out from the device housing 1. Then, the next thermal insulation module can be detected, and according to the values of each thermal insulation module, the thermal insulation module with the best thermal insulation effect can be selected, thus achieving the effect of cutting and sampling, improving the convenience of temperature detection of the thermal insulation module, and being applicable to thermal insulation modules of more sizes.

[0035] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.

[0036] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A detection device for an insulation module, characterized in that: include: A device housing (1) and a top frame (2), a control power supply (3) is arranged below the top frame (2), an electric heating plate (4) is installed at the bottom of the control power supply (3), a heat conducting plate (5) is arranged at the top of the device housing (1), a temperature measuring box (6) is arranged below the heat conducting plate (5), a temperature sensor (7) is installed at the bottom of the temperature measuring box (6), an operation panel (8) is installed on the outside of the device housing (1), and the operation panel (8) is connected to the temperature sensor (7) through a cable; Also includes: A cutting mechanism is used for cutting and taking materials from the insulation module, the cutting mechanism is installed on the outer side of the electric heating plate (4), the cutting mechanism comprises a mounting frame (9) installed on the top of the electric heating plate (4), both ends of the mounting frame (9) are installed with a first moving block (10), the inner side of the first moving block (10) is provided with a mounting ring (11), two adjusting rods (12) are rotatably installed between the bottom of the top frame (2) and the inner side of the device housing (1), the outer side of the adjusting rod (12) is provided with a first thread that matches the mounting ring (11), and the outer side of the electric heating plate (4) is fixedly installed with a mounting plate (13) ), a frame-shaped cutter (14) is fixedly installed at the bottom of the mounting plate (13), an opening for the frame-shaped cutter (14) to move is provided at the top of the device housing (1), a plurality of positioning rods (33) are fixedly installed between the bottom of the heat conducting plate (5) and the inner side of the device housing (1), and the positioning rods (33) slide through the bottom of the temperature measuring box (6), a driving motor (15) is fixedly installed on the inner wall of the bottom of the device housing (1), the output end of the driving motor (15) is fixedly connected to the adjacent adjusting rod (12), and a synchronous belt (16) is rotatably installed between the two adjusting rods (12); A material setting mechanism, used for taking out the insulation module after detection, the material setting mechanism being installed on the outside of the electric heating plate (4); A heat insulation mechanism is used to improve the heating efficiency of the electric heating plate (4) on the heat insulation module, and the heat insulation mechanism is installed on the outside of the temperature measuring box (6).

2. A detection device for a thermal insulation module according to claim 1, characterized in that: The material setting mechanism comprises a plurality of mounting tubes (17) mounted on the top of the mounting plate (13), an insertion rod (18) being fixedly mounted on the inner side of the mounting tube (17), a plurality of extrusion plates (19) being slidably mounted on the outer side of the insertion rod (18), two first connecting rods (20) being hingedly mounted between the extrusion plate (19) and the inner side of the insertion rod (18), an insertion pin (21) being slidably mounted on the inner side of the insertion rod (18), a movable plate (22) being fixedly mounted on the outer side of the insertion pin (21), a second connecting rod (23) being hingedly mounted between the movable plate (22) and the extrusion plate (19), and a second connecting rod (23) being fixedly mounted on the outer side of the insertion pin (21). A slider (24) is provided, and a cavity for limiting the sliding of the slider (24) is provided on the inner side of the insertion rod (18), a tension spring (25) is fixedly installed between the bottom of the slider (24) and the inner side of the cavity, a plurality of slide frames (26) are slidably installed on the inner side of the insertion rod (18), a first spring (27) is fixedly installed between the slide frame (26) and the inner side of the insertion rod (18), a latching tooth (28) is fixedly installed on one side of the slide frame (26), the top of the slider (24) is an arc-shaped inclined surface structure, and the bottom of the latching tooth (28) is an inclined surface structure, and an unlocking component for moving the latching tooth (28) is also provided on the top of the insertion rod (18).

3. A detection device for a thermal insulation module according to claim 2, characterized in that: The heat insulation mechanism comprises two second movable blocks (34) installed at the bottom of the temperature measuring box (6); the outer side of the adjusting rod (12) is provided with a second thread matched with the second movable block (34), and the pitch of the second thread is smaller than the pitch of the first thread; two limit blocks (35) are fixedly installed at the bottom of the top frame (2); the outer side of the mounting ring (11) is provided with a plurality of sliding cavities; an insert block (37) is slidably installed on the inner side of the sliding cavity; a third spring (38) is fixedly installed between the insert block (37) and the inner side of the sliding cavity; the side of the insert block (37) away from the third spring (38) is an inclined structure; and the inner side of the first movable block (10) is provided with a slot for limiting insertion of the insert block (37).

4. The detection device for a thermal insulation module according to claim 1, characterized in that: A plurality of ventilation holes are provided on the top of the mounting plate (13).

5. The detection device for a thermal insulation module according to claim 1, characterized in that: A sealing cylinder (36) is slidably mounted on the outer side of the positioning rod (33), and the sealing cylinder (36) is mounted on the bottom of the temperature measuring box (6).

6. The detection device for a thermal insulation module according to claim 2, characterized in that: A plurality of anti-slip grooves are provided on one side of the extrusion plate (19).

7. The detection device for a thermal insulation module according to claim 2, characterized in that: The unlocking assembly includes a pressure plate (30) arranged on the top of the insertion rod (18), and a plurality of push rods (31) are fixedly installed on the bottom of the pressure plate (30). The number of the push rods (31) is the same as the number of the sliding frame (26), and the push rods (31) are slidably installed on the inner side of the sliding frame (26). A stop block (29) is fixedly installed on the inner side of the sliding frame (26), and the top of the stop block (29) and the bottom of the push rod (31) are both inclined structures. A second spring (32) is installed between the bottom of the pressure plate (30) and the insertion rod (18).

8. The detection device for a thermal insulation module according to claim 7, characterized in that: A top block (39) is installed at the bottom of the top frame (2); the number of the top blocks (39) is the same as the number of the pressure plates (30), and the top blocks (39) are located directly above the pressure plates (30).

9. The detection device for a thermal insulation module according to claim 3, characterized in that: The inner side of the temperature measuring box (6) contacts the outer side of the frame-shaped cutter (14), and the top of the temperature measuring box (6) is in an inclined structure.

Citation Information

Patent Citations

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